Described examples include an optical device having a first light source configured to provide a first light having a first characteristic. The optical device also has a second light source configured to provide a second light having a second characteristic. The optical device also has a combiner configured to combine the first light and the second light to provide a combined light. The optical device also has a spatial light modulator configured to modulate the combined light to provide modulated combined light. The optical device also has a divider configured to receive the modulated combined light and to direct a first portion of the modulated combined light having the first characteristic to a first target and to direct a second portion of the modulated combined light having the second characteristic to a second target.
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14. An apparatus comprising:
an aperture comprising:
a first portion configured to transmit light having a first characteristic and to transmit light having a second characteristic; and
a second portion surrounding the first portion, the second portion configured to transmit light having the first characteristic and to reflect light having the second characteristic.
11. A method comprising:
producing, by a first light source, first light having a first characteristic;
producing, by a second light source, second light having a second characteristic;
combining, by a combiner, the first light and the second light to produce combined light having the first characteristic and the second characteristic;
modulating, by a spatial light modulator, the combined light to produce modulated light having the first characteristic and the second characteristic;
directing, by a divider, a first portion of the modulated light having the first characteristic in a first direction; and
directing, by the divider, a second portion of the modulated light having the second characteristic in a second direction, the second direction different than the first direction.
1. An optical device comprising:
a first light source configured to produce first light having a first characteristic;
a second light source configured to produce second light having a second characteristic;
a combiner optically coupled to the first light source and to the second light source, wherein the combiner is configured to combine the first light and the second light to produce combined light having the first characteristic and the second characteristic;
a spatial light modulator optically coupled to the combiner, wherein the spatial light modulator is configured to modulate the combined light to produce modulated combined light having the first characteristic and the second characteristic; and
a divider optically coupled to the spatial light modulator, wherein the divider is configured to direct a first portion of the modulated combined light having the first characteristic in a first direction and to direct a second portion of the modulated combined light having the second characteristic in a second direction, the second direction different than the first direction.
2. The optical device of
3. The optical device of
4. The optical device of
5. The optical device of
6. The optical device of
7. The optical device of
8. The optical device of
9. The optical device of
a third light source configured to produce third light having a second color;
a second combiner optically coupled to the third light source and to the first combiner, the second combiner configured to reflect the third light having the second color, transmit the first light having the first color, and transmit the second light being infrared;
a fourth light source configured to produce fourth light having a third color; and
a third combiner optically coupled to the fourth light source, to the second combiner, and to the spatial light modulator, the third combiner configured to reflect the fourth light having the third color, transmit the first light having the first color, transmit the second light being infrared, and transmit the third light having the second color.
10. The optical device of
12. The method of
13. The method of
16. The apparatus of
17. The apparatus of
18. The apparatus of
19. The apparatus of
a first light source configured to produce first light having the first characteristic;
a second light source configured to produce second light having the second characteristic; and
a combiner optically coupled to the first light source and to the second light source, wherein the combiner is configured to combine the first light and the second light to produce combined light having the first characteristic and the second characteristic;
wherein the spatial light modulator is configured to modulate the combined light to produce modulated combined light having the first characteristic and the second characteristic; and
wherein the aperture is configured to receive the modulated combined light and to pass a portion of the modulated combined light as passed modulated light.
20. The apparatus of
21. The apparatus of
a first light source configured to produce first light having the first characteristic;
a second light source configured to produce second light having the second characteristic; and
a combiner optically coupled to the first light source and to the second light source, wherein the combiner is configured to combine the first light and the second light to produce combined light having the first characteristic and the second characteristic;
wherein the aperture is optically coupled to the combiner, the aperture configured to receive the combined light and to pass a portion of the combined light as passed combined light, and
wherein the spatial light modulator is configured to modulated the passed combined light to produce modulated combined light.
22. The apparatus of
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This application claims the benefit under 35 U.S.C. § 119(e) to co-owned U.S. Provisional Patent Application Ser. No. 62/803,241, filed Feb. 8, 2019, entitled “SIMULTANEOUS INFORMATION DISPLAY ON MULTIPLE PLANES USING SINGLE PROJECTION UNIT,” which is hereby incorporated by reference herein in its entirety.
This relates generally to projection devices and, in examples, to projection devices using spatial light modulation.
A wide variety of applications use projection devices. Projection of a video image is the most common application. Other applications include heads-up displays and advertising displays. Another application is recognition and ranging devices. For example, in facial recognition, a projector may project a known pattern onto a face for recognition. A camera or other sensor detects the reflection of the pattern off the face. The data from the camera is processed to determine if the face matches a face in a database. In many cases, an installation may include more than one projection-based technology. This requires a projector for each technology employed. Using multiple projectors adds cost and size to the installation.
In accordance with an example, an optical device includes a first light source having a first light source output, wherein the first light source is configured to provide a first light having a first characteristic. The optical device also includes a second light source having a second light source output, wherein the second light source is configured to provide a second light having a second characteristic. The optical device also includes a combiner having a first input optically coupled to the first light source output, a second input optically coupled to the second light source output, and a combiner output, wherein the combiner is configured to combine the first light and the second light to provide a combined light on the combiner output. The optical device also includes a spatial light modulator having a spatial light modulator input optically coupled to the combiner output and having a modulated output, wherein the spatial light modulator is configured to modulate the combined light to provide modulated combined light on the modulated output. The optical device also includes a divider having a divider input optically coupled to the modulated output, wherein the divider is configured to direct a first portion of the modulated combined light having the first characteristic in a first direction and to direct a second portion of the modulated combined light having the second characteristic in a second direction.
Corresponding numerals and symbols in the different figures generally refer to corresponding parts unless otherwise indicated. The figures are not necessarily drawn to scale.
The term “coupled” may include connections made with intervening elements, and additional elements and various connections may exist between any elements that are “coupled.” Elements referred to herein as “optically coupled” are elements that include a connection between the elements that involves transmission of light. Also, as used herein, the terms “on” and “over” may include layers or other elements where intervening or additional elements are between an element and the element that it is “on” or “over.” Also, as used herein, a “combiner” is a device that combines two or more streams of light into one combined stream of light. Also, as used herein, a “divider” is a device that separates a stream of light stream into two or more streams of light.
In example arrangements, the problem of projecting onto two planes or targets is solved by using a divider at an output of a projection system to use one projection system to project onto two different planes or targets. Examples include an optical device having a first light source having a first light source output, wherein the first light source is configured to provide a first light having a first characteristic. The optical device includes a second light source having a second light source output that is configured to provide a second light having a second characteristic. The optical device has a combiner having a first input optically coupled to the first light source output, a second input optically coupled to the second light source output, wherein the combiner is configured to combine the first light and the second light to provide a combined light on a combiner output. The optical device includes a spatial light modulator having a spatial light modulator input optically coupled to the combiner output, wherein the spatial light modulator is configured to modulate the combined light to provide modulated combined light on a modulated output. The optical device also has a divider having a divider input optically coupled to the modulated output, wherein the divider is configured to direct a first portion of the modulated combined light having the first characteristic in a first direction and to direct a second portion of the modulated combined light having the second characteristic in a second direction.
Light integrator 230 integrates combined light 228. In this example, light integrator 230 is a fly's eye array. Lens (es) 232 and 238, along with the light integrator 230 and mirror 236, provide light 234 to uniformly illuminate the spatial light modulator 240. Light 234 reflects off one surface of prism 242 by total internal reflection (TIR), which serves as a spatial light modulator input. In this example, spatial light modulator 240 is a digital micromirror device. In other examples, spatial light modulator 240 may be another type of spatial light modulator, such a liquid-crystal on silicon (LCOS) device. Spatial light modulator 240 modulates light 234 to provide modulated light 244, which is a spatial light modulator output. Because modulated light 244 addresses the surfaces of prism 242 and cover prism 246 at an angle too great for TIR, modulated light 244 passes through prism 242 and cover prism 246 to mirror 252.
Projection optics 250 and mirror 252 focus modulated light 244 as projected light 253. In this example, mirror 252 is concaved, and thus has an optical power. In other examples, mirror 252 may be flat, convex or omitted. In the present example, the concave surface of mirror 252 allows for a more compact optical device 200. In this example, dichroic mirror 254 reflects light in a selected frequency band, such as infrared light and passes light in other frequency bands, such as visible light. Therefore, projected infrared light 256 reflects off dichroic mirror 254 in a first direction. Projected infrared light 256 is similar to infrared light 110 (
In this example, dichroic mirror 354 is similar to dichroic mirror 254 (
In contrast, the non-visible light, such as non-visible light 1010 (
Partial projection optics 1250A and partial projection optics 1250B are similar to projection optics 350 (
In optical device 1300, aperture 1351 is between light integrator 1330 and lens(es) 1332. Aperture 1351 is similar to aperture 1100. Like aperture 1100 and aperture 1251, aperture 1351 has a smaller aperture for infrared light than for visible light. Therefore, modulated infrared light 1356 has a greater depth of focus than visible modulated light 1358. In addition, visible modulated light 1358 has greater light throughput than modulated infrared light 1356.
Modifications are possible in the described examples, and other examples are possible, within the scope of the claims.
Sheng, Zhongyan, Ferri, John Marshall, Bartlett, Terry Alan, Sivakumar, Ganapathy
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